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Oppermann, F.; Eicke, N.; Lein, M.: Real-time propagator eigenstates. In: Journal of physics : B, Atomic, Molecular and Optical Physics 55 (2022), Nr. 19, 19LT01. DOI: https://doi.org/10.1088/1361-6455/ac8bb9

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To cite the version in the repository, please use this identifier: https://doi.org/10.15488/13704

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Sum total of downloads: 32




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Abstract: 
Obtaining a numerical solution of the time-dependent Schrödinger equation requires an initial state for the time evolution. If the system Hamiltonian can be split into a time-independent part and a time-dependent perturbation, the initial state is typically chosen as an eigenstate of the former. For propagation using approximate methods such as operator splitting, we show that both imaginary-time evolution and diagonalization of the time-independent Hamiltonian produce states that are not exactly stationary in absence of the perturbation. In order to avoid artifacts from these non-stationary initial states, we propose an iterative method for calculating eigenstates of the real-time propagator. We compare the performance of different initial states by simulating ionization of a model atom in a short laser pulse and we demonstrate that much lower noise levels can be achieved with the real-time propagator eigenstates.
License of this version: CC BY 4.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2022
Appears in Collections:Fakultät für Mathematik und Physik

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1 image of flag of Germany Germany 20 62.50%
2 image of flag of United States United States 10 31.25%
3 image of flag of Spain Spain 1 3.12%
4 image of flag of China China 1 3.12%

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